Extending Common Envelope Simulations from Roche Lobe Overflow to the Nebular Phase
Thomas A. Reichardt, Orsola De Marco, Roberto Iaconi, Christopher A., Tout, Daniel J. Price

TL;DR
This study simulates the entire common envelope evolution of a red giant and its companion, from Roche lobe overflow to nebular phase, revealing how initial mass transfer influences nebula shapes.
Contribution
First comprehensive simulation covering from Roche lobe overflow to nebular phase, analyzing resolution effects and mass transfer impact on post-envelope structures.
Findings
Roche lobe overflow duration depends on simulation resolution.
Mass transfer rates align with analytical predictions.
Circumbinary disks form and are disrupted during ejection.
Abstract
We have simulated a common envelope interaction of a 0.88-M, 90-R, red giant branch star and a 0.6-M, compact companion with the smoothed particle hydrodynamics code, Phantom, from the beginning of the Roche lobe overflow phase to the beginning of the self-regulated inspiral, using three different resolutions. The duration of the Roche lobe overflow phase is resolution dependent and would lengthen with increased resolution beyond the 20 years observed, while the inspiral phase and the post-common envelope separation are largely independent of resolution. Mass transfer rates through the Lagrangian points drive the orbital evolution during the Roche lobe overflow phase, as predicted analytically. The absolute mass transfer rate is resolution dependent, but always within an order of magnitude of the analytical value. Similarly, the gravitational drag in…
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